A vehicle roll control system uses two accelerometers (38, 40) on the vehicle to detect body roll and then filters out higher frequency roll movements as indicative of a rough road surface. The system also monitors vehicle speed, and increases roll stiffness in response to measured increase in vehicle speed, but decreases roll stiffness in response to detected rough road surfaces.
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1. A vehicle suspension system comprising a roll controller for controlling the roll stiffness of the vehicle, a roughness sensing system for measuring the roughness of a surface over which the vehicle is traveling, and a vehicle speed sensor for measuring the speed of the vehicle wherein the roll controller is arranged to combine the outputs from the roughness sensing system and the speed sensor to produce an integral over time which will increase in response to an increase in road roughness but decrease in response to increasing vehicle speed, and to increase the roll stiffness of the vehicle in response to a decrease in the integral, but decrease the roll stiffness in response to an increase in the integral.
6. A vehicle suspension system comprising roll control means for controlling the roll stiffness of the vehicle, roughness sensing means for measuring the roughness of a surface over which the vehicle is travelling, and a vehicle speed sensing means for measuring the speed of the vehicle wherein the roll controller means is arranged to combine the outputs from the roughness sensing means and the speed sensing means to produce an integral over time which will increase in response to an increase in mad roughness but decrease in response to increasing road speed, and to increase the roll stiffness of the vehicle in response to a decrease in the integral, but decrease the roll stiffness in response to an increase in the integral.
7. A vehicle suspension system comprising a roll controller for controlling the roll stiffness of the vehicle, a roughness sensing system for measuring the roughness of a surface over which the vehicle is traveling, and a vehicle speed sensor for measuring the speed of the vehicle wherein the roll controller is arranged to combine the outputs from the roughness sensing system and the speed sensor to produce an integral over time which will vary in a first manner in response to an increase in road roughness and vary in a second manner in response to increasing road speed, and to decrease the roll stiffness in response to variations in the first manner in the integral, but increase the roll stiffness of the vehicle in response to variations in the second manner in the integral.
2. The system according to
3. The system according to
4. The system according to
5. The system according to
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This application is a divisional of Ser. No. 09/806,256 filed Mar. 27, 2001, now U.S. Pat. No. 6,588,769 which is a national stage of PCT application No. PCT/GB99/03061 filed on Sep. 15, 1999.
The present invention relates to active suspension systems for vehicles, and in particular to such systems which include active roll control.
It is known from U.S. Pat. No. 5,487,006 to provide a vehicle suspension system in which a single lateral accelerometer is used to give an indication of the nature of the surface over which the vehicle is travelling. However this system suffers from the disadvantage that it cannot clearly distinguish between lateral acceleration of the whole vehicle, and lateral acceleration caused by body roll produced by a rough road surface.
The present invention provides apparatus for detecting the roughness of a surface over which a vehicle is travelling, the apparatus comprising roll detection means for measuring roll movements of the vehicle, filtering means for detecting high frequency roll movements, and control means arranged to measure the said roughness by measuring the level of said high frequency roll movements.
Preferably the roll detection means comprises a pair of accelerometers located on the sprung part of the vehicle at different distances from the roll axis of the vehicle.
Preferably the accelerometers are vertically spaced and each accelerometer is arranged to detect acceleration in a direction which is lateral to the vehicle.
Preferably the control means is arranged to monitor the measured acceleration from each of the accelerometers, to produce a roll signal dependent on the difference between the two measured accelerations said roll signal being indicative of instantaneous vehicle roll.
Preferably said difference is an integral over time of the instantaneous difference between the measured accelerations, or the difference between respective integrals over time of the two measured accelerations.
The present invention further provides a vehicle suspension system including apparatus according to the invention wherein the control means is arranged to control the roll stiffness of the vehicle, and is arranged to reduce the roll stiffness of the vehicle in response to the detection of increased surface roughness.
Preferably the system further comprises vehicle speed detection means wherein the control means is arranged to increase the roll stiffness in response to increasing vehicle speed.
The present invention also provides a vehicle suspension system comprising roll control means for controlling the roll stiffness of the vehicle, roughness measuring means for measuring the roughness of the surface over which the vehicle is travelling, vehicle speed measuring means for measuring the speed of the vehicle wherein the roll control means is arranged to increase the roll stiffness if the vehicle speed increases but to decrease the roll stiffness of the roughness of the surface over which the vehicle is travelling increases.
Preferred embodiments of the present invention will now be described by way of example only with reference to the accompanying drawings in which:
Referring to
Referring to
Referring to
A road speed signal 58 which increases with the road speed of the vehicle is passed through a low gain amplifier 60 and a high gain amplifier 62 to produce low gain and high gain speed signals 64, 66. A threshold device 68 monitors the vehicle speed signal and provides a relatively high threshold signal 70 if the speed signal exceeds a predetermined threshold. A switch unit 72 has an output 74 and connects the low gain speed signal to it if the vehicle speed is below a predetermined speed V1, connects the high gain speed signal to it if the vehicle speed is above the predetermined speed V1, and permanently connects the output from the threshold device to it.
The output from the switching device is compared with the modulus signal and the difference input to an integrator 76. The output of the integrator 76 is, at any time t, the integral over the preceding interval δ of the difference between the modulus signal and the and the output from the switching device.
The result is that the output R from the integrator 76 will generally increase with road roughness, but will decrease with road speed as is illustrated in
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